US8993397B2

Pillar structure for memory device and method

Summary by NHIP

Memory Device Pillar Formation

The method forms pillar structures from a stack of contact, undoped resistive switching silicon, conductive metal, and barrier materials. These pillars maintain metal-to-metal contact with a bottom wiring structure regardless of etching alignment while a second dielectric layer is deposited over them.

Claim Score by NHIP

Read claim 10, the broadest

Abstract

A method of forming a memory device. The method provides a semiconductor substrate having a surface region. A first dielectric layer is formed overlying the surface region of the semiconductor substrate. A bottom wiring structure is formed overlying the first dielectric layer and a second dielectric material is formed overlying the top wiring structure. A bottom metal barrier material is formed to provide a metal-to-metal contact with the bottom wiring structure. The method forms a pillar structure by patterning and etching a material stack including the bottom metal barrier material, a contact material, a switching material, a conductive material, and a top barrier material. The pillar structure maintains a metal-to-metal contact with the bottom wiring structure regardless of the alignment of the pillar structure with the bottom wiring structure during etching. A top wiring structure is formed overlying the pillar structure at an angle to the bottom wiring structure.

US8993397B2, drawing sheet 1
Sheet 1 of 14

Term

4.7 yearsleft in the term

Expires 10 June 2031.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

18 claims: 2 independent, 16 dependent

  1. 1
    A method of forming a semiconductor device having a memory device, comprising:providing a semiconductor substrate having a surface region;forming a first dielectric layer overlying the surface region of the semiconductor substrate;forming a first via within the first dielectric layer material;depositing a liner material within the first via;depositing a metal-containing material over and in contact with the liner material and filling the first via;planarizing the liner material and the metal-containing material within the first via along with the first dielectric layer surface, exposing a top surface of the metal-containing material within the first via;depositing a contact material overlying the metal-containing material within the first via;depositing an undoped resistive switching silicon material overlying and touching the contact material;depositing a metal-containing material overlying and touching the undoped resistive switching silicon material;depositing a top barrier material overlying and touching the conductive metal-containing material;performing a patterning and etching process to form a plurality of pillar structures from at least the contact material, the undoped resistive switching silicon material, the metal-containing material, and the top barrier material;depositing a second dielectric material overlying at least the plurality of pillar structures, the second dielectric material having a non-planer surface region;planarizing the second dielectric material, exposing surface regions of the plurality of pillar structures, the surface regions of the plurality of pillar structures including surface regions of the top barrier material;and forming a top wiring structure overlying at least the surface regions of the plurality of pillar structures, wherein the forming the top wiring structure comprises: depositing a third dielectric material above the exposed surface regions of the plurality of pillar structures and a top surface of the second dielectric material;forming a second via within the third dielectric material;depositing the liner material within the second via;depositing the metal-containing material over the liner material and in contact with the liner material and filling the second via;planarizing the liner material and the metal-containing material within the second via along with the second dielectric layer surface, exposing a top surface of the metal-containing material within the second via.
  2. 10
    Broadest claimClaim Score 31, narrow(NHIP)A method for fabricating a semiconductor device comprises:forming a via within a first dielectric material layer;depositing a liner material within the via within the first dielectric material layer;depositing a metal-containing material over the liner material and filling the via within the first dielectric layer;planarizing the liner material and the metal-containing material within the via, such that the liner material and a top surface of the metal-containing material are co-planar to the first dielectric layer;forming a bottom electrode above and in contact with the top surface of the metal-containing material;forming an undoped resistive switching silicon material layer above and in contact with the bottom electrode;forming an active metal layer above and in contact with the undoped resistive switching silicon material layer comprising undoped silicon-containing material;forming a barrier metal layer above and in contact with the active metal layer;etching at least the barrier metal layer, the active metal layer and the undoped resistive switching silicon material layer to form a plurality of pillars;disposing a second dielectric material between the plurality of pillars;planarizing the second dielectric material layer such that a top surface of the barrier metal layer is co-planar to a top surface of the second dielectric material layer;depositing a third dielectric material layer above the top surface of the barrier metal layer and the top surface of the second dielectric material layer;forming a via within the third dielectric material layer;depositing the liner material within the via of the third dielectric material layer;depositing the metal-containing material over the liner material within the via of the third dielectric material layer and filling the via;and planarizing the liner material and the metal-containing material within the via of the third dielectric material layer, such that the liner material and a top surface of the metal-containing material are co-planar to the third dielectric layer.